CN107944118A - A kind of effective building safety monitoring method - Google Patents

A kind of effective building safety monitoring method Download PDF

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Publication number
CN107944118A
CN107944118A CN201711145365.3A CN201711145365A CN107944118A CN 107944118 A CN107944118 A CN 107944118A CN 201711145365 A CN201711145365 A CN 201711145365A CN 107944118 A CN107944118 A CN 107944118A
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data
module
monitoring
deformation
sent
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景亚杰
杨宏刚
钟兴润
赵江平
刘鹏刚
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Xian University of Architecture and Technology
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Xian University of Architecture and Technology
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Priority to CN201711145365.3A priority Critical patent/CN107944118A/en
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    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F30/00Computer-aided design [CAD]
    • G06F30/20Design optimisation, verification or simulation
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01BMEASURING LENGTH, THICKNESS OR SIMILAR LINEAR DIMENSIONS; MEASURING ANGLES; MEASURING AREAS; MEASURING IRREGULARITIES OF SURFACES OR CONTOURS
    • G01B21/00Measuring arrangements or details thereof, where the measuring technique is not covered by the other groups of this subclass, unspecified or not relevant
    • G01B21/32Measuring arrangements or details thereof, where the measuring technique is not covered by the other groups of this subclass, unspecified or not relevant for measuring the deformation in a solid
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01LMEASURING FORCE, STRESS, TORQUE, WORK, MECHANICAL POWER, MECHANICAL EFFICIENCY, OR FLUID PRESSURE
    • G01L5/00Apparatus for, or methods of, measuring force, work, mechanical power, or torque, specially adapted for specific purposes
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06TIMAGE DATA PROCESSING OR GENERATION, IN GENERAL
    • G06T17/00Three dimensional [3D] modelling, e.g. data description of 3D objects

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  • Engineering & Computer Science (AREA)
  • General Physics & Mathematics (AREA)
  • Theoretical Computer Science (AREA)
  • Geometry (AREA)
  • Computer Hardware Design (AREA)
  • Evolutionary Computation (AREA)
  • General Engineering & Computer Science (AREA)
  • Computer Graphics (AREA)
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Abstract

The present invention relates to a kind of effective building safety monitoring method, in the industrial personal computer that construction site installation is connected with each other, central controller, digital camera, deformation monitoring sensor group, monitoring point internal stress acquisition module, big dipper module, forecast analysis module, three-dimensional simulation simulation analysis module, central controller controls digital camera, deformation monitoring sensor group, monitoring point internal stress acquisition module carries out data acquisition, the data prediction analysis module and central processing unit that will be collected by big dipper module, the analysis that construction situation is carried out by forecast analysis module and expert's evaluation module is predicted;Construction threedimensional model is established by three-dimensional simulation simulation analysis module, three-dimensional simulation emulation is carried out by being inserted into virtual actuator and virtual-sensor in the three-dimensional model.The present invention can be used for various construction bad borders scene, eliminate the security information hidden danger in work progress, effective detection and management construction site, safeguards the normal operation of the detecting system of construction site.

Description

A kind of effective building safety monitoring method
Technical field
The present invention relates to technical field of building construction, more particularly to a kind of effective building safety monitoring method.
Background technology
At present, construction safety is increasingly valued by people, but conventional monitoring is artificial survey Amount observation, then carries out assessment calculating, really the security situation of construction can not be assessed, while its number for detecting According to being all static, how about is the development of the deformation of building, and the safety that these deformation datas can be brought is hidden Trouble can not all be predicted analysis, once problem discovery is later, will bring huge loss.
Meanwhile existing construction monitoring data are by wireless way for transmitting such as wired network or GPRS, 3G, significantly Improve whole system and set up required cost and time, once while dtr signal will cause the failure of data transfer, So that monitoring lacks continuity, so that the accuracy of whole monitoring process substantially reduces.
The content of the invention
The purpose of the invention is to overcome the deficiencies of the prior art and provide a kind of effective building safety monitoring side Method.
The present invention is to be achieved through the following technical solutions:
A kind of effective building safety monitoring method, comprises the following steps successively:
(1) deformation monitoring sensor group, is installed on building real-time deformation monitoring point, the deformation data for distortion monitoring points Collection, and the data collected are sent to central processing unit and forecast analysis module by big dipper module;
(2) video data acquiring module, for the digital camera by being erected at around building real-time deformation monitoring point Carry out the collection of high-resolution scene deformation pattern data and construction ambient image data, the view data that will be collected Central processing unit is sent to by big dipper module, and the view data collected is subjected to carrying for characteristic value according to default algorithm After taking, the characteristic value of gained is sent to central processing unit;
(3) monitoring point internal stress acquisition module, for carrying out adopting for internal stress data value in building real-time deformation monitoring point Collection, and the data collected are sent to central processing unit and forecast analysis module by big dipper module;
(4) central processing unit, for receiving deformation monitoring sensor group, video data acquiring module and monitoring point planted agent The data that power acquisition module is sent, and database progress is sent to after these data are marked with its corresponding Big Dipper information Storage, by the data sending of completion mark to forecast analysis module and expert's evaluation module;It is additionally operable to that the number of mark will will be completed The data format that can be identified according to three-dimensional simulation simulation analysis module is converted into is sent to three-dimensional simulation simulation analysis module;For Corresponding data sending is called to be shown to display screen in database according to the data that human-machine operation module inputs;For connecing The control command of human-machine operation module input is received, and the module specified is sent it to according to default algorithm;
(5) forecast analysis module, for according to deformation measurement data, deformation monitoring image and the internal stress number received The assessment prediction that building deformation is carried out according to value is analyzed, and the shifting that obtained prediction of result is sent to display screen and is specified Dynamic terminal, is sent to specified data storehouse and is stored;
(6) expert's evaluation module, typically builds for store various types deformation, planted agent's force data and its may bring Building safety hidden danger model, for will receive deformation-sensor data, deformation image data and internal stress with being stored Data carry out similar degree contrast, and by comparison result according to similarity carry out ascending or descending order sequence after, be sent to display screen;
(7) three-dimensional simulation simulation analysis module, for passing through data of the ADAMS according to transmitted by central processing unit and control Order generates various three-dimensional stereo models;
(8) virtual actuator, for driving Parameters variation, each element in the block with three-dimensional simulation simulation analysis mould is established After relation, parameter can be changed in specified scope, different ginsengs is directed to so as to driving simulation analysis method Number carries out calculating solution;And for changing position, the direction setting of transfering node, move three-dimensional stereo model;It is additionally operable to root Decomposition, cutting, amplification and the diminution of three-dimensional stereo model are carried out according to the control command of reception;
(9) virtual-sensor, for the mesh that can directly acquire corresponding result or information being inserted into three-dimensional stereo model Target logic unit;
(10) during analogue simulation, virtual actuator performs simulation analysis algorithm or simulation analysis side by circulating Method, result is fed back to virtual-sensor, and the virtual-sensor receives result and automatic display data;Human-machine operation mould Block, logs in for user, is additionally operable to input various control commands and data to be stored.
Further, the forecast analysis module includes graphic plotting module, for drawing and monitoring according to the monitoring The various curve map comparative analysis modules that data are drawn, will draw curve and compare and analyze and predict with former measured curve, defeated Go out to analyze prediction result.
Further, the graphic plotting module generates the space-time with time, spatial variations according to the monitoring data of input Effect curve, that is, tense curve and three-dimensional effect curve, the tense curve show the initial data of each monitoring point or become figurate number According to the situation of changing with time, the monitoring result that the three-dimensional effect curve highlights same time different measuring points is supervised with deformation is opened The changing rule that measuring point promotes.
Further, a display screen is further included, for being monitored video, monitoring photo and the broadcasting of monitoring data, Modular converter is inside set, monitoring video or monitoring data word can be converted into as needed and played;It is additionally operable to show man-machine behaviour Make module input various data and whole monitoring process in need data to be shown, and based on the data output table detected Two-dimensional result figure, the three-dimensional result figure of sign building deformation.
Further, the human-machine operation module includes picture input module, voice input module and word input module.
Further, the voice input module uses microphone, and word input module uses handwriting pad and keyboard, described Picture input module is imported using scanner, camera or USB interface.
Further, further include a power supply unit, power supply unit is solar generator, one kind in wind-driven generator or Two kinds.
Compared with prior art, the beneficial effects of the invention are as follows:The present invention is carried out by Big Dipper short message mechanics of communication The transmission of data, it is easy to use without setting up communication line, comprehensive construction situation can be detected in real time, So as to draw the multiple assessment of construction situation as a result, testing result accuracy is high, and can pass through construction three-dimensional mould The structure of type, has carried out prediction and simulation analysis to the subsequent scenario of construction, can find in time in building construction process Various construction schemes, can also be converted into acting on established construction three-dimensional mould after parameter by the problem of generation Type, realizes the reasonable selection of construction scheme.This method is safe and practical, and method is convenient, in real time effectively, avoids building and applies Safety problem in work monitoring, and this method can be used for various construction bad borders scene, eliminate the security information in work progress Hidden danger, effective detection and management construction site, safeguards the normal operation of the detecting system of construction site.
Brief description of the drawings
Fig. 1 is a kind of system block diagram of effective building safety monitoring method of the embodiment of the present invention.
Embodiment
In order to make the purpose , technical scheme and advantage of the present invention be clearer, with reference to the accompanying drawings and embodiments, it is right The present invention is further elaborated.It should be appreciated that the specific embodiments described herein are merely illustrative of the present invention, and It is not used in the restriction present invention.
A kind of effective building safety monitoring method shown in please referring to Fig.1, comprises the following steps successively:
(1) deformation monitoring sensor group, is installed on building real-time deformation monitoring point, the deformation data for distortion monitoring points Collection, and the data collected are sent to central processing unit and forecast analysis module by big dipper module;
(2) video data acquiring module, for the digital camera by being erected at around building real-time deformation monitoring point Carry out the collection of high-resolution scene deformation pattern data and construction ambient image data, the view data that will be collected Central processing unit is sent to by big dipper module, and the view data collected is subjected to carrying for characteristic value according to default algorithm After taking, the characteristic value of gained is sent to central processing unit;
(3) monitoring point internal stress acquisition module, for carrying out adopting for internal stress data value in building real-time deformation monitoring point Collection, and the data collected are sent to central processing unit and forecast analysis module by big dipper module;The monitoring point planted agent Power acquisition module includes the sensors such as pressure cell, stress meter and strain gauge;
(4) central processing unit, for receiving deformation monitoring sensor group, video data acquiring module and monitoring point planted agent The data that power acquisition module is sent, and database progress is sent to after these data are marked with its corresponding Big Dipper information Storage, by the data sending of completion mark to forecast analysis module and expert's evaluation module;It is additionally operable to that the number of mark will will be completed The data format that can be identified according to three-dimensional simulation simulation analysis module is converted into is sent to three-dimensional simulation simulation analysis module;For Corresponding data sending is called to be shown to display screen in database according to the data that human-machine operation module inputs;For connecing The control command of human-machine operation module input is received, and the module specified is sent it to according to default algorithm;
(5) forecast analysis module, for according to deformation measurement data, deformation monitoring image and the internal stress number received The assessment prediction that building deformation is carried out according to value is analyzed, and the shifting that obtained prediction of result is sent to display screen and is specified Dynamic terminal, is sent to specified data storehouse and is stored;
(6) expert's evaluation module, typically builds for store various types deformation, planted agent's force data and its may bring Building safety hidden danger model, for will receive deformation-sensor data, deformation image data and internal stress with being stored Data carry out similar degree contrast, and by comparison result according to similarity carry out ascending or descending order sequence after, be sent to display screen;
(7) three-dimensional simulation simulation analysis module, for passing through data of the ADAMS according to transmitted by central processing unit and control Order generates various three-dimensional stereo models;
(8) virtual actuator, for driving Parameters variation, each element in the block with three-dimensional simulation simulation analysis mould is established After relation, parameter can be changed in specified scope, different ginsengs is directed to so as to driving simulation analysis method Number carries out calculating solution;And for changing position, the direction setting of transfering node, move three-dimensional stereo model;It is additionally operable to root Decomposition, cutting, amplification and the diminution of three-dimensional stereo model are carried out according to the control command of reception;
(9) virtual-sensor, for the mesh that can directly acquire corresponding result or information being inserted into three-dimensional stereo model Target logic unit;The virtual-sensor uses deformation monitoring sensor;
(10) during analogue simulation, virtual actuator performs simulation analysis algorithm or simulation analysis side by circulating Method, result is fed back to virtual-sensor, and the virtual-sensor receives result and automatic display data;Human-machine operation mould Block, logs in for user, is additionally operable to input various control commands and data to be stored.
In the present embodiment, the forecast analysis module includes graphic plotting module, for drawing and monitoring according to the prison The various curve map comparative analysis modules that data are drawn are surveyed, curve will be drawn and compare and analyze and predict with former measured curve, Output analysis prediction result.
In the present embodiment, the graphic plotting module according to the monitoring data of input, generate with the time, spatial variations when Empty effect curve, that is, tense curve and three-dimensional effect curve, the tense curve show initial data or the deformation of each monitoring point Data change with time situation, and the three-dimensional effect curve highlights the monitoring results of same time different measuring points with opening deformation The changing rule that monitoring point promotes.
In the present embodiment, a display screen is further included, for being monitored broadcasting for video, monitoring photo and monitoring data Put, inside set modular converter, monitoring video or monitoring data can be converted into word as needed and played;It is additionally operable to show man-machine Data to be shown are needed in the various data and whole monitoring process of operation module input, and based on the data output detected Two-dimensional result figure, the three-dimensional result figure of characterization building deformation.
In the present embodiment, the human-machine operation module includes picture input module, voice input module and word input mould Block.
In the present embodiment, the voice input module uses microphone, and word input module uses handwriting pad and keyboard, institute Picture input module is stated to import using scanner, camera or USB interface.
In the present embodiment, a power supply unit is further included, power supply unit is solar generator, one kind in wind-driven generator Or two kinds.
In conclusion the present invention carries out the transmission of data by Big Dipper short message mechanics of communication, without setting up communication line, It is easy to use, comprehensive construction situation can be detected in real time, so as to show that a variety of of construction situation comment Estimate as a result, testing result accuracy is high, and can be by the structure of construction threedimensional model, to the subsequent scenario of construction The problem of having carried out prediction and simulation analysis, can having found to produce in building construction process in time, can also apply various buildings Work scheme acts on established construction threedimensional model after being converted into parameter, realizes the reasonable choosing of construction scheme Select.This method is safe and practical, and method is convenient, in real time effectively, avoids the safety problem in construction monitoring, and this method Available for various construction bad borders scene, the security information hidden danger in work progress is eliminated, effectively detection and management construction site, Safeguard the normal operation of the detecting system of construction site.
The foregoing is merely illustrative of the preferred embodiments of the present invention, is not intended to limit the invention, all essences in the present invention All any modification, equivalent and improvement made within refreshing and principle etc., should all be included in the protection scope of the present invention.

Claims (7)

  1. A kind of 1. effective building safety monitoring method, it is characterised in that:Comprise the following steps successively,
    (1) deformation monitoring sensor group, be installed on building real-time deformation monitoring point, and the deformation data for distortion monitoring points is adopted Collection, and the data collected are sent to central processing unit and forecast analysis module by big dipper module;
    (2) video data acquiring module, carries out for the digital camera by being erected at around building real-time deformation monitoring point The collection of high-resolution scene deformation pattern data and construction ambient image data, the view data collected is passed through Big dipper module is sent to central processing unit, and the view data collected is carried out to the extraction of characteristic value according to default algorithm Afterwards, the characteristic value of gained is sent to central processing unit;
    (3) monitoring point internal stress acquisition module, for carrying out the collection of internal stress data value in building real-time deformation monitoring point, and The data collected are sent to central processing unit and forecast analysis module by big dipper module;
    (4) central processing unit, is adopted for receiving deformation monitoring sensor group, video data acquiring module and monitoring point internal stress Collect the data that module is sent, and be sent to database after these data are marked with its corresponding Big Dipper information and stored up Deposit, by the data sending of completion mark to forecast analysis module and expert's evaluation module;It is additionally operable to that the data of mark will will be completed The data format that being converted into three-dimensional simulation simulation analysis module can identify is sent to three-dimensional simulation simulation analysis module;For root The data inputted according to human-machine operation module call corresponding data sending to be shown to display screen in database;For receiving The control command of human-machine operation module input, and the module specified is sent it to according to default algorithm;
    (5) forecast analysis module, for according to deformation measurement data, deformation monitoring image and the internal stress data value received Carry out the assessment prediction analysis of building deformation, and the mobile end that obtained prediction of result is sent to display screen and is specified End, is sent to specified data storehouse and is stored;
    (6) expert's evaluation module, deformation, planted agent's force data and its building that may be brought typically are built for store various types Security risk model, for by the deformation-sensor received data, deformation image data and internal stress and the number that is stored According to carry out similar degree contrast, and by comparison result according to similarity carry out ascending or descending order sequence after, be sent to display screen;
    (7) three-dimensional simulation simulation analysis module, for the data and control command by ADAMS according to transmitted by central processing unit Generate various three-dimensional stereo models;
    (8) virtual actuator, for driving Parameters variation, with each element opening relationships in the block of three-dimensional simulation simulation analysis mould Afterwards, parameter can be changed in specified scope, so as to driving simulation analysis method for different parameters into Row, which calculates, to be solved;And for changing position, the direction setting of transfering node, move three-dimensional stereo model;Basis is additionally operable to connect The control command of receipts carries out decomposition, cutting, amplification and the diminution of three-dimensional stereo model;
    (9) virtual-sensor, is the target that can directly acquire corresponding result or information being inserted into three-dimensional stereo model Logic unit;
    (10) during analogue simulation, virtual actuator performs simulation analysis algorithm or simulating analysis by circulating, Result is fed back to virtual-sensor, the virtual-sensor receives result and automatic display data;Human-machine operation module, is used Logged in user, be additionally operable to input various control commands and data to be stored.
  2. A kind of 2. effective building safety monitoring method according to claim 1, it is characterised in that:The forecast analysis mould Block includes graphic plotting module, for drawing and monitoring the various curve map comparative analysis moulds drawn according to the monitoring data Block, will draw curve and compares and analyzes and predict with former measured curve, output analysis prediction result.
  3. A kind of 3. effective building safety monitoring method stated according to claim 2, it is characterised in that:The graphic plotting module According to the monitoring data of input, the tau-effect curve i.e. tense curve and three-dimensional effect curve with time, spatial variations are generated, Situation that the tense curve shows the initial data of each monitoring point or deformation data changes with time, the three-dimensional effect are bent Line highlights the monitoring result of same time different measuring points with the changing rule for opening distortion monitoring points propulsion.
  4. A kind of 4. effective building safety monitoring method according to claim 1, it is characterised in that:Further include a display Screen, for being monitored video, monitoring photo and the broadcasting of monitoring data, inside sets modular converter, can be as needed by prison Survey video or monitoring data are converted into word broadcasting;It is additionally operable to the various data of display human-machine operation module input and whole prison Data to be shown, and the two-dimensional result figure based on the data output characterization building deformation detected, three are needed during survey Tie up result figure.
  5. A kind of 5. effective building safety monitoring method according to claim 1, it is characterised in that:The human-machine operation mould Block includes picture input module, voice input module and word input module.
  6. A kind of 6. effective building safety monitoring method according to claim 5, it is characterised in that:The phonetic entry mould Block uses microphone, and word input module uses handwriting pad and keyboard, the picture input module using scanner, camera or USB interface imports.
  7. A kind of 7. effective building safety monitoring method according to claim 1, it is characterised in that:Further include one and supply Denso Put, power supply unit is one or both of solar generator, wind-driven generator.
CN201711145365.3A 2017-11-17 2017-11-17 A kind of effective building safety monitoring method Pending CN107944118A (en)

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Cited By (10)

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Publication number Priority date Publication date Assignee Title
CN108645360A (en) * 2018-06-22 2018-10-12 核工业西南勘察设计研究院有限公司 A kind of bridge monitoring methods
CN109099961A (en) * 2018-07-03 2018-12-28 中国电子科技集团公司第二十研究所 A kind of communication data collection analysis and transmission device
CN109977181A (en) * 2019-02-28 2019-07-05 广东赛诺科技股份有限公司 A method of based on bridge stereoscopic monitoring
CN110411509A (en) * 2019-07-17 2019-11-05 贵州新泰安科技有限公司 A kind of building O&M monitoring method and system
CN111650863A (en) * 2020-06-09 2020-09-11 湖南城市学院 Engineering safety monitoring instrument and monitoring method
CN111857070A (en) * 2020-07-09 2020-10-30 国网浙江省电力有限公司嘉兴供电公司 Construction site monitoring system and monitoring method
CN112948949A (en) * 2021-04-07 2021-06-11 讯飞智元信息科技有限公司 Dynamic modeling method, device and equipment for hydro-junction engineering
CN116538948A (en) * 2023-06-28 2023-08-04 深圳市鼎邦工程有限公司 Building structure deformation monitoring system based on optical fiber sensing technology
CN116931524A (en) * 2023-07-25 2023-10-24 江苏猎人安防科技有限公司 Intelligent monitoring system and process for building
CN117538430A (en) * 2024-01-04 2024-02-09 西安建筑科技大学 Building structure reinforcement method and monitoring system based on data identification

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CN106251249A (en) * 2016-07-28 2016-12-21 内蒙古科技大学 A kind of construction informationization dynamic monitoring system
CN106593534A (en) * 2016-12-18 2017-04-26 河北科技大学 Intelligent tunnel construction security monitoring system

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CN106251249A (en) * 2016-07-28 2016-12-21 内蒙古科技大学 A kind of construction informationization dynamic monitoring system
CN106593534A (en) * 2016-12-18 2017-04-26 河北科技大学 Intelligent tunnel construction security monitoring system

Cited By (14)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN108645360A (en) * 2018-06-22 2018-10-12 核工业西南勘察设计研究院有限公司 A kind of bridge monitoring methods
CN109099961A (en) * 2018-07-03 2018-12-28 中国电子科技集团公司第二十研究所 A kind of communication data collection analysis and transmission device
CN109977181A (en) * 2019-02-28 2019-07-05 广东赛诺科技股份有限公司 A method of based on bridge stereoscopic monitoring
CN110411509A (en) * 2019-07-17 2019-11-05 贵州新泰安科技有限公司 A kind of building O&M monitoring method and system
CN111650863B (en) * 2020-06-09 2022-07-08 湖南城市学院 Engineering safety monitoring instrument and monitoring method
CN111650863A (en) * 2020-06-09 2020-09-11 湖南城市学院 Engineering safety monitoring instrument and monitoring method
CN111857070A (en) * 2020-07-09 2020-10-30 国网浙江省电力有限公司嘉兴供电公司 Construction site monitoring system and monitoring method
CN112948949A (en) * 2021-04-07 2021-06-11 讯飞智元信息科技有限公司 Dynamic modeling method, device and equipment for hydro-junction engineering
CN116538948A (en) * 2023-06-28 2023-08-04 深圳市鼎邦工程有限公司 Building structure deformation monitoring system based on optical fiber sensing technology
CN116538948B (en) * 2023-06-28 2023-09-08 深圳市鼎邦工程有限公司 Building structure deformation monitoring system based on optical fiber sensing technology
CN116931524A (en) * 2023-07-25 2023-10-24 江苏猎人安防科技有限公司 Intelligent monitoring system and process for building
CN116931524B (en) * 2023-07-25 2024-04-26 铯镨科技有限公司 Intelligent monitoring system and process for building
CN117538430A (en) * 2024-01-04 2024-02-09 西安建筑科技大学 Building structure reinforcement method and monitoring system based on data identification
CN117538430B (en) * 2024-01-04 2024-03-26 西安建筑科技大学 Building structure reinforcement method and monitoring system based on data identification

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Application publication date: 20180420